首页> 外文期刊>International Geology Review >Plate Interactions, Evolving Magmatic Styles, and Inheritance of Structural Paths: Development of the Gold-Rich, Miocene El Indio Epithermal Belt, Northern Chile
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Plate Interactions, Evolving Magmatic Styles, and Inheritance of Structural Paths: Development of the Gold-Rich, Miocene El Indio Epithermal Belt, Northern Chile

机译:板块相互作用,不断演变的岩浆样式和结构路径的继承:智利北部富金,中新世的印第奇高温热带的发展

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Ore deposits constitute singularities in the Earth crust, and form in response to a combination in time and space of a variety of geological processes. We here explore the complex setting that led to formation of an outstanding belt of precious-metal epithermal deposits in northern Chile, including the world class Au-Cu-As El Indio deposit. We discuss the formation of the El Indio belt in terms of Oligocene-Miocene plate tectonic and magmatic evolution of the Nazca-South America margin. The analysis of Landsat images allows recognition of a highly fractured domain involving a major Oligocene NW-SE-trending fault zone, with associated R_1-R_2-type structures. We suggest that a set of time-coincidental factors that occurred between approx 10 and 6 Ma may have led to formation of the Late Miocene El Indio belt. Late Miocene subduction of the Juan Fernandez Ridge (JFR) coincided with a substancial shift in magmatic emplacement style, linked to a compositional change from andesitic to dacitic, which resulted in the passage from stratovolcanoes to dome and dike complexes. It is not the composition alone, but the style that may be the crucial element here to understand why mineralization developed. Although stratovolcanoes easily vent volatiles and metals (via violent eruptions and quiescent outgassing), intrusions tend to retain these, and therefore, can generate volatile-, metal-rich hydrothermal solutions. We further propose that subduction of the JFR may have involved increased plate coupling, and the reactivation of older NNE trending R_2 type shears (inherited structural corridors), along which the belt would have formed preferentially.
机译:矿床构成了地壳中的奇异点,是对各种地质过程在时间和空间上的结合作出反应而形成的。我们在这里探索复杂的环境,从而导致在智利北部形成了杰出的贵金属超热矿床带,包括世界一流的Au-Cu-As El Indio矿床。我们根据纳兹卡-南美边缘的渐新世-中新世板块构造和岩浆演化来讨论El Indio带的形成。对Landsat图像的分析可以识别涉及主要渐新世NW-SE趋势断裂带的高断裂域,并具有相关的R_1-R_2型结构。我们建议发生在大约10到6 Ma之间的一组时间巧合因素可能导致了晚中新世El Indio带的形成。胡安·费尔南德斯海岭(JFR)的中新世晚期俯冲与岩浆进位样式发生实质性转变相吻合,这与安第斯山向大溪地的成分变化有关,从而导致了从平流层火山过渡到穹顶和堤防复合体。不仅仅是组成,而是样式可能是理解矿化为何发展的关键因素。尽管平流层火山很容易释放出挥发性物质和金属(通过剧烈喷发和静态除气),但侵入往往会保留这些物质,因此会生成富含挥发性金属的热液。我们进一步提出,JFR的俯冲作用可能涉及增加的板耦合,以及重新激活较旧的NNE趋势R_2型剪切机(继承的结构廊道),沿该带优先形成。

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